Antibiotics (AB) resistance is a major threat to global health, thus the development of novel AB classes is urgently needed. Lantibiotics (i.e. nisin) are natural compounds that effectively control bacterial populations, yet their clinical potential is very limited. Nisin targets membrane-embedded cell wall precursor - lipid II - via capturing its pyrophosphate group (PPi), which is unlikely to evolve, and thus represents a promising pharmaceutical target. Understanding of exact molecular mechanism of initial stages of membrane-bound lipid II recognition by water-soluble nisin is indispensable. Here, using molecular simulations, we demonstrate that the structure of lipid II is determined to a large extent by the surrounding water-lipid milieu. In contrast to the bulk solvent, in the bilayer only two conformational states remain capable of nisin binding. In these states PPi manifests a unique arrangement of hydrogen bond acceptors on the bilayer surface. Such a "pyrophosphate pharmacophore" cannot be formed by phospholipids, which explains high selectivity of nisin/lipid II recognition. Similarly, the "recognition module" of nisin, being rather flexible in water, adopts the only stable conformation in the presence of PPi analogue (which mimics the lipid II molecule). We establish the "energy of the pyrophosphate pharmacophore" approach, which effectively distinguishes nisin conformations that can form a complex with PPi. Finally, we propose a molecular model of nisin recognition module/lipid II complex in the bacterial membrane. These results will be employed for further study of lipid II targeting by antimicrobial (poly)cyclic peptides and for design of novel AB prototypes.
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http://dx.doi.org/10.1038/s41598-020-65522-y | DOI Listing |
Int J Food Microbiol
January 2025
College of Food Science and Engineering, Northwest University, Xi'an, Shaanxi 710069, China. Electronic address:
Alicyclobacillus spp. are crucial factors affecting the quality of fruit juice, so it is very important to control their contamination. In this study, the inactivation activity and mechanism of high-voltage pulsed electric fields (HVPEF) combined with antibacterial agents against Alicyclobacillus spp.
View Article and Find Full Text PDFJ Food Sci
January 2025
Department of Analytical and Food Chemistry, Faculty of Sciences, University of Vigo, Ourense, Spain.
This work aimed to study the production, for the first time, of three fermented products of chestnut puree (CP) with milk kefir grains, a higher nisin-producing (Lactococcus (L.) lactis CECT 539) and a higher lactic acid-producing (Lactobacillus (Lb.) casei CECT 4043) lactic acid bacteria (LAB).
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State Key Laboratory of Marine Food Processing & Safety Control, Dalian Polytechnic University, Dalian 116034, China. Electronic address:
In order to address the issue of food contamination by microorganisms and effectively harness the antibacterial properties of nisin, we attempted to incorporate nisin into natural polymer films while addressing its inherent instability. An antibacterial food packaging film based on carboxymethyl chitosan (CCS) binding with L-cysteine (CYS) and oxidized konjac glucomannan (OKG) was developed through both Schiff base reaction and addition reaction of thiol aldehyde. To analyze the effect of addition reaction of thiol aldehyde on the CCS-CYS/OKG films' physicochemical properties, the CCS-CYS was prepared with different CYS combination rates, which were further used to fabricate composite films.
View Article and Find Full Text PDFProbiotics Antimicrob Proteins
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Department of Nutritional Science and Food Safety, Faculty of Applied Bioscience, Tokyo University of Agriculture, Setagaya, Tokyo, 156-8502, Japan.
European foulbrood (EFB) is a bee larvae-specific infectious disease and the causative pathogen is Melissococcus plutonius. Broad-spectrum antibiotics have classically been used in many countries to control the pathogens; however, their use in apiaries was discontinued in several countries due to concerns regarding the health of bees and humans. Therefore, the development of alternative treatments for use in apiaries that are safe for bees and humans is essential.
View Article and Find Full Text PDFPak J Pharm Sci
January 2025
Department of Medical Microbiology, Cerrahpasa School of Medicine, Istanbul University-Cerrahpasa, Istanbul, Turkey.
Antimicrobial peptides (AMPs) may mitigate the danger of increasing antimicrobial resistance. We aimed to determine the activities of catestatin, temporin A, nisin and cecropin A against Bacteroides fragilis ATCC 25285, Prevotella melaninogenica ATCC 25845, Cutibacterium acnes ATCC 6919, Peptostreptococcus anaerobius ATCC 27337 and Peptostreptococcus stomatis DSM 17678. strains.
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